JOURNAL OF LOW FREQUENCY NOISE VIBRATION AND ACTIVE CONTROL

Scope & Guideline

Fostering Collaboration Across Engineering Disciplines

Introduction

Explore the comprehensive scope of JOURNAL OF LOW FREQUENCY NOISE VIBRATION AND ACTIVE CONTROL through our detailed guidelines, including its aims and scope. Stay updated with trending and emerging topics, and delve into declining areas to understand shifts in academic interest. Our guidelines also showcase highly cited topics, featuring influential research making a significant impact. Additionally, discover the latest published papers and those with high citation counts, offering a snapshot of current scholarly conversations. Use these guidelines to explore JOURNAL OF LOW FREQUENCY NOISE VIBRATION AND ACTIVE CONTROL in depth and align your research initiatives with current academic trends.
LanguageEnglish
ISSN1461-3484
PublisherSAGE PUBLICATIONS LTD
Support Open AccessYes
CountryUnited Kingdom
TypeJournal
Convergefrom 1996 to 2024
AbbreviationJ LOW FREQ NOISE V A / J. Low Freq. Noise Vib. Act. Control
Frequency4 issues/year
Time To First Decision-
Time To Acceptance-
Acceptance Rate-
Home Page-
Address1 OLIVERS YARD, 55 CITY ROAD, LONDON EC1Y 1SP, ENGLAND

Aims and Scopes

The JOURNAL OF LOW FREQUENCY NOISE VIBRATION AND ACTIVE CONTROL focuses on the interdisciplinary study of vibrations, noise control, and active control methodologies. It serves as a platform for researchers exploring theoretical and practical advancements in vibration analysis, control systems, and noise mitigation techniques.
  1. Vibration Analysis and Control:
    Research on the dynamics of various mechanical systems, including nonlinear oscillators, rotor dynamics, and structural vibrations, with a focus on control methodologies to mitigate undesirable vibrations.
  2. Noise Control Techniques:
    Exploration of methods for reducing low-frequency noise in various environments, including urban areas, transportation systems, and industrial applications, through innovative design and engineering solutions.
  3. Mathematical Modeling and Simulation:
    Development of analytical and numerical methods for modeling complex systems that exhibit nonlinear behavior, including fractional-order systems and systems under stochastic excitation.
  4. Active and Semi-active Control Systems:
    Investigation of control strategies, including adaptive and intelligent control methods, for enhancing the performance of active and semi-active suspension systems in vehicles and other applications.
  5. Material and Structural Innovations:
    Research on advanced materials and structures that enhance vibration isolation and noise reduction, including the use of metamaterials and smart materials.
Recent publications reveal a shift towards innovative themes and methodologies within the journal, reflecting the evolving landscape of research in vibration and noise control.
  1. Advancements in Active Control Strategies:
    There is a growing emphasis on developing sophisticated active control strategies, including adaptive and intelligent control methods, to enhance system performance and robustness.
  2. Integration of Machine Learning and AI:
    The application of machine learning and artificial intelligence techniques in fault diagnosis, predictive maintenance, and control optimization is becoming increasingly prominent.
  3. Fractional and Nonlinear Dynamics:
    Research on fractional-order systems and nonlinear dynamics is gaining traction, reflecting a broader interest in complex system behaviors and advanced analytical techniques.
  4. Innovative Material Solutions:
    Emerging studies focus on the use of smart materials and metamaterials for vibration suppression and noise reduction, indicating a trend towards material innovation in engineering applications.
  5. Multiscale and Multiphysics Approaches:
    There is an increasing trend towards utilizing multiscale and multiphysics modeling approaches to capture the intricate interactions in complex vibration and noise systems.

Declining or Waning

While the journal continues to evolve, certain themes are gradually declining in prominence. This may reflect shifts in research focus or advancements in methodologies that render previous approaches less relevant.
  1. Traditional Passive Vibration Control:
    The reliance on conventional passive techniques for vibration control is decreasing as active and adaptive methods become more prevalent and effective in various applications.
  2. Basic Linear Vibration Theory:
    Research centered around fundamental linear vibration theory is waning, as more complex nonlinear and fractional-order dynamics gain attention in contemporary studies.
  3. Noise Measurement Techniques:
    Focus on outdated noise measurement methodologies is declining, as advancements in technology and new data analytics methods provide enhanced capabilities for noise assessment.

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